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COMBUSTION CHARACTERISTICS OF A CAN COMBUSTOR WITH A ROTATING CASING FOR AN INNOVATIVE MICRO GAS TURBINE

机译:新型燃气轮机带旋转壳体的罐式燃烧器的燃烧特性

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A can type combustor with rotating casing for the innovative micro gas turbine has been modeled, and the combustion characteristics were investigated. The simulations were performed using commercial code STAR-CD, in which three-dimensional compressible k- ε turbulent flow model and one-step overall chemical reaction between methane/air were used. The results include the detailed flame structure at different rotation speed of outside casing, ranging from stationary to the maximum speed of 58000 rpm of the design point. The airflows are baffled when entering the combustor through the linear holes due to the centrifugal force caused by the rotating casing and the inlet flow angle is inclined. When the rotation is in the opposite direction of the swirling flows driven by the designed swirler, a shorter but broader recirculation zone and a concave shape flame are found at higher rotating speed. At maximum rotating speed, the swirling flows are dominated by the rotating flows caused by the casing, especially downstream of the combustor. The combustor performance were also analyzed, indicating higher combustion efficiency and higher exit temperature when casing rotates, which benefits the performance of gas turbine, but the cooling and possible hot spots for turbines are the primary concerns.
机译:对新型微型燃气轮机的带旋转壳体的罐式燃烧器进行了建模,并研究了燃烧特性。使用商业代码STAR-CD进行模拟,其中使用了三维可压缩k-ε湍流模型和甲烷/空气之间的一步式整体化学反应。结果包括在不同外壳转速下的详细火焰结构,范围从固定到设计点的最高速度58000 rpm。由于旋转的壳体所产生的离心力,当气流通过线性孔进入燃烧室时,气流受到阻碍,并且进气流角倾斜。当旋转与设计的旋流器驱动的旋流的方向相反时,在较高的旋转速度下会发现较短但较宽的再循环区域和凹形火焰。在最大转速下,旋流主要由壳体引起的旋转流所控制,尤其是燃烧室的下游。还对燃烧器的性能进行了分析,表明当机壳旋转时,燃烧效率更高,出口温度更高,这有利于燃气轮机的性能,但涡轮机的冷却和可能的热点是主要问题。

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